[1] 赵群,杨慎,王红岩,等. 中国页岩气开发现状及前景预判[J]. 环境影响评价,2019,41(1):6-10.

Zhao Qun, Yang Shen, Wang Hongyan, et al. China's shale gas development and its prospects[J]. Environmental Impact Assessment, 2019, 41(1): 6-10.
[2] 王科,李海涛,李留杰,等. 3种常用页岩气井经验递减方法:以四川盆地威远区块为例[J]. 天然气地球科学,2019,30(7):946-954.

Wang Ke, Li Haitao, Li Liujie, et al. Research on three widely-used empirical decline methods for shale gas wells in Weiyuan block of the Sichuan Basin[J]. Natural Gas Geoscience, 2019, 30(7): 946-954.
[3] Abouelresh M O, Slatt R M. Lithofacies and sequence stratigraphy of the Barnett Shale in east-central Fort Worth Basin, Texas[J]. AAPG Bulletin, 2012, 96(1): 1-22.
[4] Hickey J J, Henk B. Lithofacies summary of the Mississippian Barnett Shale, Mitchell 2 T.P. Sims well, Wise County, Texa[J]. AAPG Bulletin, 2007, 91(4): 437-443.
[5] Dong T, Harris N B, Ayranci K, et al. Porosity characteristics of the Devonian Horn River shale, Canada: Insights from lithofacies classification and shale composition[J]. International Journal of Coal Geology, 2015, 141-142: 74-90.
[6] Liang C, Jiang Z X, Zhang C M, et al. The shale characteristics and shale gas exploration prospects of the Lower Silurian Longmaxi shale, Sichuan Basin, South China[J]. Journal of Natural Gas Science and Engineering, 2014, 21: 636-648.
[7] Ou C H, Li C C, Rui Z H, et al. Lithofacies distribution and gas-controlling characteristics of the Wufeng–Longmaxi black shales in the southeastern region of the Sichuan Basin, China[J]. Journal of Petroleum Science and Engineering, 2018, 165: 269-283.
[8] 郭彤楼,张汉荣. 四川盆地焦石坝页岩气田形成与富集高产模式[J]. 石油勘探与开发,2014,41(1):28-36.

Guo Tonglou, Zhang Hanrong. Formation and enrichment mode of Jiaoshiba shale gas field, Sichuan Basin[J]. Petroleum Exploration and Development, 2014, 41(1): 28-36.
[9] Chen S F, Wilson C J L, Luo Z L, et al. The evolution of the western Sichuan foreland basin, southwestern China[J]. Journal of Southeast Asian Earth Sciences, 1994, 10(3/4): 159-168.
[10] Chen L, Lu Y C, Jiang S, et al. Sequence stratigraphy and its application in marine shale gas exploration: A case study of the Lower Silurian Longmaxi Formation in the Jiaoshiba shale gas field and its adjacent area in Southeast Sichuan Basin, SW China[J]. Journal of Natural Gas Science and Engineering, 2015, 27: 410-423.
[11] Liang C, Jiang Z X, Cao Y C, et al. Deep-water depositional mechanisms and significance for unconventional hydrocarbon exploration: A case study from the Lower Silurian Longmaxi shale in the southeastern Sichuan Basin[J]. AAPG Bulletin, 2016, 100(5): 773-794.
[12] Ma Y Q, Fan M J, Lu Y C, et al. Geochemistry and sedimentology of the Lower Silurian Longmaxi mudstone in southwestern China: Implications for depositional controls on organic matter accumulation[J]. Marine and Petroleum Geology, 2016, 75: 291-309.
[13] Tang X L, Jiang Z X, Huang H X, et al. Lithofacies characteristics and its effect on gas storage of the Silurian Longmaxi marine shale in the Southeast Sichuan Basin, China[J]. Journal of Natural Gas Science and Engineering, 2016, 28: 338-346.
[14] 王玉满,王宏坤,张晨晨,等. 四川盆地南部深层五峰组—龙马溪组裂缝孔隙评价[J]. 石油勘探与开发,2017,44(4):531-539.

Wang Yuman, Wang Hongkun, Zhang Chenchen, et al. Fracture pore evaluation of the Upper Ordovician Wufeng to Lower Silurian Longmaxi Formations in southern Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2017, 44(4): 531-539.
[15] Ou C H, Li C C, Huang S Y, et al. Remigration and leakage from continuous shale reservoirs: Insights from the Sichuan Basin and its periphery, China[J]. AAPG Bulletin, 2019, 103(8): 2009-2030.
[16] 蒋裕强,宋益滔,漆麟,等. 中国海相页岩岩相精细划分及测井预测:以四川盆地南部威远地区龙马溪组为例[J]. 地学前缘,2016,23(1):107-118.

Jiang Yuqiang, Song Yitao, Qi Lin, et al. Fine lithofacies of China’s marine shale and its logging prediction: A case study of the Lower Silurian Longmaxi marine shale in Weiyuan area, southern Sichuan Basin, China[J]. Earth Science Frontiers, 2016, 23(1): 107-118.
[17] 欧成华,董建蓉,陈朝刚,等. 页岩气开发评价技术[M]. 北京:石油工业出版社,2019.

Chenghua Ou, Dong Jianrong, Chen Chaogang, et al. Shale gas development evaluation technology[M]. Beijing: Petroleum Industry Press, 2019.
[18] Passey Q R, Creaney S, Kulla J B, et al. A practical model for organic richness from porosity and resistivity logs[J]. AAPG Bulletin, 1990, 74(12): 1777-1794.
[19] Fertl W H, Chilingar G V. Total organic carbon content determined from well logs[J]. SPE Formation Evaluation, 1988, 3(2): 407-419.
[20] 李延钧,张烈辉,冯媛媛,等. 页岩有机碳含量测井评价方法及其应用[J]. 天然气地球科学,2013,24(1):169-175.

Li Yanjun, Zhang Liehui, Feng Yuanyuan, et al. Logging evaluation method and its application for measuring the total organic carbon content in shale gas[J]. Natural Gas Geoscience, 2013, 24(1): 169-175.
[21] 张译戈. 长宁地区页岩气测井精细解释方法研究[D]. 成都:西南石油大学,2014.

Zhang Yige. Fine logging interpretation of shale gas in Changning area[D]. Chengdu: Southwest Petroleum University, 2014.
[22] 刘璐. 威远—长宁构造页岩气储层测井精细评价[D]. 成都:西南石油大学,2017.

Liu Lu. Fine logging evaluation of shale gas reservoir in the Weiyuan-Changning area[D]. Chengdu: Southwest Petroleum University, 2017.
[23] 程华国,袁祖贵. 用地层元素测井(ECS)资料评价复杂地层岩性变化[J]. 核电子学与探测技术,2005,25(3):233-238.

Cheng Huaguo, Yuan Zugui. Evaluation of formation lithology changes using elemental capture spectroscopy (ECS) logging[J]. Nuclear Electronics & Detection Technology, 2005, 25(3): 233-238.
[24] 王玉满,董大忠,黄金亮,等. 四川盆地及周边上奥陶统五峰组观音桥段岩相特征及对页岩气选区意义[J]. 石油勘探与开发,2016,43(1):42-50.

Wang Yuman, Dong Dazhong, Huang Jinliang, et al. Guanyinqiao member lithofacies of the Upper Ordovician Wufeng Formation around the Sichuan Basin and the significance to shale gas plays, SW China[J]. Petroleum Exploration and Development, 2016, 43(1): 42-50.
[25] 李立尧,魏久传,李梁宁,等. 截断高斯模拟与沉积特征在煤系含隔水层三维空间分布的应用研究[J]. 矿业研究与开发,2018,38(2):48-52.

Li Liyao, Wei Jiuchuan, Li Liangning, et al. Application research on the 3D space distribution of truncated Gaussian Simulation and sedimentary characteristics in the coal-measures bearing aquiclude[J]. Mining Research & Development, 2018, 38(2): 48-52.
[26] Pinheiro M, Emery X, Miranda T, et al. Truncated Gaussian Simulation to map the spatial heterogeneity of rock mass rating[J]. Rock Mechanics and Rock Engineering, 2016, 49(8): 3371-3376.